研究目的
Investigating the mechanism and experimental study of femtosecond-laser super-resolution processing based on beam shaping technology to improve the machining accuracy and surface quality of microdevices.
研究成果
The study demonstrates that super-resolution processing can be achieved by adding pre-focusing lens and phase plate to shape the laser beam. The results provide a sufficient basis for improving the resolution of femtosecond laser microfabrication and the processing accuracy and surface quality of microdevices.
研究不足
The study is limited by the technical constraints of the femtosecond-laser microfabrication system and the properties of the photochromic material film. Potential areas for optimization include further reducing the spot size and improving the symmetry of the facula distribution.
1:Experimental Design and Method Selection:
Based on Fresnel diffraction theory and the intensity distribution function of focal spot, the focal spot shape is simulated and the main factors affecting the light intensity distribution are analyzed theoretically and simulated numerically. A shaping method to improve the asymmetric shape of the facula by adding a prefocusing lens is proposed. A beam shaping method using four-ring complex transmittance phase plate to achieve super-resolution processing is also proposed.
2:Sample Selection and Data Sources:
Photochromic material film is used for point-processing of femtosecond laser layer-by-layer.
3:List of Experimental Equipment and Materials:
Ti:Sapphire laser, prefocusing lens, phase plate, photochromic material film.
4:Experimental Procedures and Operational Workflow:
The validation experiment was carried out by scanning the photochromic material film with pulsed laser and reading the fluorescence signal of the photochromic point with single photon confocal.
5:Data Analysis Methods:
The experimental results are compared with theoretical calculation results to validate the effectiveness of the proposed methods.
独家科研数据包,助您复现前沿成果,加速创新突破
获取完整内容